Cargando…

Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials

To meet the demand for next-generation flexible optoelectronic devices, it is crucial to accurately establish the chemical structure-property relationships of new optical polymer films from a theoretical point of view, prior to production. In the current study, computer-aided simulations of newly de...

Descripción completa

Detalles Bibliográficos
Autores principales: Nam, Ki-Ho, Choi, Hoi Kil, Yeo, Hyeonuk, You, Nam-Ho, Ku, Bon-Cheol, Yu, Jaesang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6403577/
https://www.ncbi.nlm.nih.gov/pubmed/30966664
http://dx.doi.org/10.3390/polym10060630
_version_ 1783400642167963648
author Nam, Ki-Ho
Choi, Hoi Kil
Yeo, Hyeonuk
You, Nam-Ho
Ku, Bon-Cheol
Yu, Jaesang
author_facet Nam, Ki-Ho
Choi, Hoi Kil
Yeo, Hyeonuk
You, Nam-Ho
Ku, Bon-Cheol
Yu, Jaesang
author_sort Nam, Ki-Ho
collection PubMed
description To meet the demand for next-generation flexible optoelectronic devices, it is crucial to accurately establish the chemical structure-property relationships of new optical polymer films from a theoretical point of view, prior to production. In the current study, computer-aided simulations of newly designed poly(ester imide)s (PEsIs) with various side groups (–H, –CH(3), and –CF(3)) and substituted positions were employed to study substituent-derived steric effects on their optical and thermal properties. From calculations of the dihedral angle distribution of the model compounds, it was found that the torsion angle of the C–N imide bonds was effectively constrained by the judicious introduction of di-, tetra-, and hexa-substituted aromatic diamines with –CF(3) groups. A high degree of fluorination of the PEsI repeating units resulted in weaker intra- and intermolecular conjugations. Their behavior was consistent with the molecular orbital energies obtained using density functional theory (DFT). In addition, various potential energy components of the PEsIs were investigated, and their role in glass-transition behavior was studied. The van der Waals energy (E(vdW)) played a crucial role in the segmental chain motion, which had an abrupt change near glass-transition temperature (T(g)). The more effective steric effect caused by –CF(3) substituents at the 3-position of the 4-aminophenyl group significantly improved the chain rigidity, and showed high thermal stability (T(g) > 731 K) when compared with the –CH(3) substituent at the same position, by highly distorting (89.7°) the conformation of the main chain.
format Online
Article
Text
id pubmed-6403577
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-64035772019-04-02 Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials Nam, Ki-Ho Choi, Hoi Kil Yeo, Hyeonuk You, Nam-Ho Ku, Bon-Cheol Yu, Jaesang Polymers (Basel) Article To meet the demand for next-generation flexible optoelectronic devices, it is crucial to accurately establish the chemical structure-property relationships of new optical polymer films from a theoretical point of view, prior to production. In the current study, computer-aided simulations of newly designed poly(ester imide)s (PEsIs) with various side groups (–H, –CH(3), and –CF(3)) and substituted positions were employed to study substituent-derived steric effects on their optical and thermal properties. From calculations of the dihedral angle distribution of the model compounds, it was found that the torsion angle of the C–N imide bonds was effectively constrained by the judicious introduction of di-, tetra-, and hexa-substituted aromatic diamines with –CF(3) groups. A high degree of fluorination of the PEsI repeating units resulted in weaker intra- and intermolecular conjugations. Their behavior was consistent with the molecular orbital energies obtained using density functional theory (DFT). In addition, various potential energy components of the PEsIs were investigated, and their role in glass-transition behavior was studied. The van der Waals energy (E(vdW)) played a crucial role in the segmental chain motion, which had an abrupt change near glass-transition temperature (T(g)). The more effective steric effect caused by –CF(3) substituents at the 3-position of the 4-aminophenyl group significantly improved the chain rigidity, and showed high thermal stability (T(g) > 731 K) when compared with the –CH(3) substituent at the same position, by highly distorting (89.7°) the conformation of the main chain. MDPI 2018-06-07 /pmc/articles/PMC6403577/ /pubmed/30966664 http://dx.doi.org/10.3390/polym10060630 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nam, Ki-Ho
Choi, Hoi Kil
Yeo, Hyeonuk
You, Nam-Ho
Ku, Bon-Cheol
Yu, Jaesang
Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title_full Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title_fullStr Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title_full_unstemmed Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title_short Molecular Design and Property Prediction of Sterically Confined Polyimides for Thermally Stable and Transparent Materials
title_sort molecular design and property prediction of sterically confined polyimides for thermally stable and transparent materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6403577/
https://www.ncbi.nlm.nih.gov/pubmed/30966664
http://dx.doi.org/10.3390/polym10060630
work_keys_str_mv AT namkiho moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials
AT choihoikil moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials
AT yeohyeonuk moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials
AT younamho moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials
AT kuboncheol moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials
AT yujaesang moleculardesignandpropertypredictionofstericallyconfinedpolyimidesforthermallystableandtransparentmaterials